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Localized excitations in competing bond-order-wave, charge-density-wave and spin-density-wave systems II: Competing charge-density-wave and spin-density-wave

Abstract

The extended Peierls-Hubbard model is used to study the competition of the spin-density-wave (SDW) and charge-density-wave (CDW) states as well as the attendant localized excitations in quasi-one-dimensional systems like MX-chains. The ground state properties are first studied as a function of the Coulomb interaction U and the on-site electron-phonon coupling {lambda}{sub 2}. The SDW state dominates in the region of large U and small {lambda}{sub 2}, while the CDW state prevails in the opposite limit. In the intermediate region these two states compete with each other, one being stable, whereas the other being metastable. The localized excitations (polarons and excitons) are studied in detail in each region using the Bogoliubov-de Gennes formalism. The self-trapped excitons (STE) in the CDW dominating regime contain locally non-vanishing SDW distortions and vice versa. As {lambda}{sub 2} increases, the number of bound states changes from two to four for the exciton case and from two to three for the polaron case. Upon its further increase, one type of STE with a certain pattern of SDW distortion and charge transfer is transforming into another type of STE with a different pattern. The possibilities of verifying the ground state properties in optical and transport experiments and identifying  More>>
Authors:
Wenzheng, Wang; Zhaobin, Su; Lu, Yu; [1]  Chuilin, Wang [2] 
  1. International Centre for Theoretical Physics, Trieste (Italy)
  2. China Center of Advanced Science and Technology, Beijing (China). World Lab.
Publication Date:
Nov 01, 1992
Product Type:
Technical Report
Report Number:
IC-92/380
Reference Number:
SCA: 665410; PA: AIX-24:021602; SN: 93000946395
Resource Relation:
Other Information: PBD: Nov 1992
Subject:
75 CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY; HUBBARD MODEL; CHARGE DENSITY; SPIN WAVES; COULOMB FIELD; ELECTRON-PHONON COUPLING; ENERGY GAP; EXCITATION; EXCITONS; GROUND STATES; HAMILTONIANS; ORDER PARAMETERS; PHASE DIAGRAMS; POLARONS; 665410; SUPERCONDUCTIVITY
OSTI ID:
10126443
Research Organizations:
International Centre for Theoretical Physics (ICTP), Trieste (Italy)
Country of Origin:
IAEA
Language:
English
Other Identifying Numbers:
Other: ON: DE93617131; TRN: XA9333263021602
Availability:
OSTI; NTIS (US Sales Only); INIS
Submitting Site:
INIS
Size:
[37] p.
Announcement Date:
Jul 04, 2005

Citation Formats

Wenzheng, Wang, Zhaobin, Su, Lu, Yu, and Chuilin, Wang. Localized excitations in competing bond-order-wave, charge-density-wave and spin-density-wave systems II: Competing charge-density-wave and spin-density-wave. IAEA: N. p., 1992. Web.
Wenzheng, Wang, Zhaobin, Su, Lu, Yu, & Chuilin, Wang. Localized excitations in competing bond-order-wave, charge-density-wave and spin-density-wave systems II: Competing charge-density-wave and spin-density-wave. IAEA.
Wenzheng, Wang, Zhaobin, Su, Lu, Yu, and Chuilin, Wang. 1992. "Localized excitations in competing bond-order-wave, charge-density-wave and spin-density-wave systems II: Competing charge-density-wave and spin-density-wave." IAEA.
@misc{etde_10126443,
title = {Localized excitations in competing bond-order-wave, charge-density-wave and spin-density-wave systems II: Competing charge-density-wave and spin-density-wave}
author = {Wenzheng, Wang, Zhaobin, Su, Lu, Yu, and Chuilin, Wang}
abstractNote = {The extended Peierls-Hubbard model is used to study the competition of the spin-density-wave (SDW) and charge-density-wave (CDW) states as well as the attendant localized excitations in quasi-one-dimensional systems like MX-chains. The ground state properties are first studied as a function of the Coulomb interaction U and the on-site electron-phonon coupling {lambda}{sub 2}. The SDW state dominates in the region of large U and small {lambda}{sub 2}, while the CDW state prevails in the opposite limit. In the intermediate region these two states compete with each other, one being stable, whereas the other being metastable. The localized excitations (polarons and excitons) are studied in detail in each region using the Bogoliubov-de Gennes formalism. The self-trapped excitons (STE) in the CDW dominating regime contain locally non-vanishing SDW distortions and vice versa. As {lambda}{sub 2} increases, the number of bound states changes from two to four for the exciton case and from two to three for the polaron case. Upon its further increase, one type of STE with a certain pattern of SDW distortion and charge transfer is transforming into another type of STE with a different pattern. The possibilities of verifying the ground state properties in optical and transport experiments and identifying these local excitations in Raman and ENDOR measurements are discussed. (author). 25 refs, 11 figs.}
place = {IAEA}
year = {1992}
month = {Nov}
}